Novel Insights into the Proteus mirabilis Crystalline Biofilm Using Real-Time Imaging

Sandra A Wilks1, Mandy J Fader2, C William Keevil3

  • 1Centre for Biological Sciences, Faculty of Natural and Environmental Sciences, University of Southampton, Southampton, Hampshire, United Kingdom; Faculty of Health Sciences, University of Southampton, Southampton, Hampshire, United Kingdom.

Plos One
|October 31, 2015
PubMed

Insights

Long-term catheter use risks urinary tract infections (UTI) and blockage from crystalline deposits. New microscopy reveals Proteus mirabilis biofilm stages, aiding UTI prevention strategies.

Area of Science:

  • Biomedical Engineering
  • Microbiology
  • Medical Device Technology

Background:

  • Indwelling catheters pose risks of urinary tract infections (UTI) and blockage.
  • Blockages result from crystalline deposits caused by urease-producing bacteria, notably Proteus mirabilis.
  • Previous research on biofilm formation lacked detailed, real-time insights.

Purpose of the Study:

  • To develop and utilize a non-destructive, real-time imaging method to visualize all stages of crystalline biofilm formation on catheter materials.
  • To understand the sequential development of Proteus mirabilis biofilms and their encrustations.

Main Methods:

  • Employed episcopic differential interference contrast (EDIC) microscopy and epifluorescence (EF) microscopy for advanced light imaging.
  • Tracked P. mirabilis attachment and biofilm development on silicone and hydrogel latex catheter sections in artificial urine over 24 days.
  • Utilized lectin staining for carbohydrate identification and 3D image reconstruction software.

Main Results:

  • Initial P. mirabilis attachment occurred within 1 hour.
  • Biofilm development included carbohydrate-based material accumulation and elongated cell formation.
  • Extensive crystalline deposits covered catheter surfaces within 4 days, with P. mirabilis observed on crystal surfaces.

Conclusions:

  • EDIC and EF microscopy provide a detailed, artifact-free view of crystalline biofilm development stages.
  • Understanding the complex relationship between P. mirabilis and crystal formation is crucial.
  • This technique can inform new strategies to prevent catheter blockage and associated UTIs.

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